Have a personal or library account? Click to login
Guanine Nucleotide Binding Protein (GNAS Complex Locus) Gene Produces Biallelically Expressed and Paternally Expressed Transcripts in Pigs Cover

Guanine Nucleotide Binding Protein (GNAS Complex Locus) Gene Produces Biallelically Expressed and Paternally Expressed Transcripts in Pigs

Open Access
|Oct 2015

References

  1. Bastepe M. (2007). The GNAS Locus: Quintessential complex gene encoding Gsα, XLαs, and other imprinted transcripts. Curr. Genomics, 8: 398-414.
  2. Bischoff S.R., Tsai S., Hardison N., Motsinger- Reif A.A., Freking B.A., Non- neman D., Rohrer G., Piedrahita J.A. (2009). Characterization of conserved and nonconserved imprinted genes in swine. Biol. Reprod., 81: 906-920.
  3. Bratuś A., Słota E. (2009). Comparative cytogenetic and molecular studies of DMdomain genes in pig and cattle. Cytogenet. Genome Res., 126: 180-185.
  4. Campbell R., Gosden C.M., Bonthron D.T. (1994). Parental origin of transcription from the human GNAS1 gene. J. Med. Genet., 31: 607-614.
  5. Chomczyński P., Sacchi N. (1987). Single-step method of RNAisolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal. Biochem., 162: 156-159.
  6. Congras A., Yerle- Bouissou M., Pinton A., Vignoles F., Liaubet L., Ferchaud S., Acloque H. (2014). Sperm DNAmethylation analysis in swine reveals conserved and speciesspecific methylation patterns and highlights an altered methylation at the GNASlocus in infertile boars. Biol. Reprod., 91: 137.
  7. De Veale B.,vander Kooy D., Babak T. (2012). Critical evaluation of imprinted gene expression by RNA-Seq:anew perspective. PLo S Genet., 8(3): e1002600.
  8. Elli F.M., Desanctis L., Ceoloni B., Maria Barbieri A., Bordogna P., Beck-Pec- coz P., Spada A., Mantovani G. (2013). Pseudohypoparathyroidism type Ia and pseudopseudohypoparathyroidism: The growing spectrum of GNASinactivating mutations. Hum. Mutat., 34: 411-416.
  9. Gregg C., Zhang J., Butler J.E., Haig D., Dulac C. (2010). Sex-specific parent-of-origin allelic expression in the mouse brain. Science, 329: 682-685.
  10. Hayden E.C. (2012). RNAstudies under fire. Nature, 484: 428.
  11. Hayward B.E., Kamiya M., Strain L., Moran V., Campbell R., Hayashizaki Y., Bonthron D.T. (1998 a). The human GNAS1 gene is imprinted and encodes distinct paternally and biallelically expressed Gproteins. Proc. Natl. Acad. Sci. USA, 95: 10038-10043.10.1073/pnas.95.17.10038214579707596
  12. Hayward B.E., Moran V., Strain L., Bonthron D.T. (1998 b). Bidirectional imprinting of a single gene: GNAS1 encodes maternally, paternally, and biallelically derived proteins. Proc. Natl. Acad. Sci. USA, 95: 15475-15480.10.1073/pnas.95.26.15475280679860993
  13. Klenke S., Siffert W., Frey U.H. (2011). Anovel aspect of GNASimprinting: higher maternal expression of Gαs in human lymphoblasts, peripheral blood mononuclear cells, mammary adipose tissue, and heart. Mol. Cell. Endocrinol., 341: 63-70.
  14. Li S., Li J., Tian J., Dong R., Wei J., Qiu X., Jiang C. (2012). Characterization, tissue expression, and imprinting analysis of the porcine CDKN1Cand NAP1L4 genes. J. Biomed. Biotechnol., 946527.
  15. Liu J., Yu S., Litman D., Chen W., Weinstein L.S. (2000). Identification ofamethylation imprint mark within the mouse GNASlocus. Mol. Cell. Biol., 20: 5808-5817.
  16. Liu J., Chen M., Deng C., Bourc’his D., Nealon J.G., Erlichman B., Bestor T.H., Weinstein L.S. (2005). Identification of the control region for tissue-specific imprinting of the stimulatory Gprotein alpha-subunit. Proc. Natl. Acad. Sci. USA, 102: 5513-5518.
  17. Mantovani G., Ballare E., Giammona E., Beck-Peccoz P., Spada A. (2002). The Gsα gene: predominant maternal origin of transcription in human thyroid gland and gonads. J. Clin. Endocrinol. Metab., 87: 4736-4740.
  18. Moore T., Haig D. (1991). Genomic imprinting in mammalian development:aparental tug-of-war. Trends. Genet., 7: 45-49.
  19. Oczkowicz M., Piestrzy ńska- Kajtoch A., Ropka- Molik K., Rejduch B., Ec - kert R. (2012). Expression and imprinting analysis of the NESP55 gene in pigs. Gene Expr. Patterns, 12: 18-23.
  20. Oczkowicz M., Ropka- Molik K., Tyra M. (2013). Analysis of the associations between polymorphisms in GNAScomplex locus and growth, carcass and meat quality traits in pigs. Mol. Biol. Rep., 40: 6419-6427.
  21. Peters J., Wroe S.F., Wells C.A., Miller H.J., Bodle D., Beechey C.V., William- son C.M., Kelsey G. (1999). Acluster of oppositely imprinted transcripts at the GNASlocus in the distal imprinting region of mouse chromosome 2. Proc. Natl. Acad. Sci. USA, 96: 3830-3835.
  22. Plagge A., Isles A.R., Gordon E., Humby T., Dean W., Gritsch S., Fischer- Colb - rie R., Wilkinson L.S., Kelsey G. (2005). Imprinted NESP55 influences behavioral reactivity to novel environments. Mol. Cell. Biol., 25: 3019-3026.
  23. Rejduch B., Oczkowicz M., Piestrzy ńska- Kajtoch A., Pi órkowska K., Wi - toń M., Rogoz M., Ró życki M. (2010). Expression of IGFBP-3 and IGFBP-5 genes in muscles of pigs representing five different breeds. J. Anim. Feed Sci., 19: 554-563.
  24. Ríos C.N., Skoracki R.J., Mathur A.B. (2012). GNAS1 and PHD2 short-interfering RNAsupport bone regeneration in vitro and in an in vivo sheep model. Clin. Orthop. Relat. Res., 470: 2541-2553.
  25. Stratil A., Knoll A., Horák P., Bílek K., Bechynov á R., Bartenschlager H., Va n Poucke M., Peelman L.J., Svobodov á K., Geldermann H. (2008). Mapping of the porcine FBN2, YWHAQ, CNN3, DCN, POSTN, SPARC, RBM39 and GNASgenes, expressed in foetal skeletal muscles. Anim. Genet., 39: 204-205.
  26. Van Laere A.S., Nguyen M., Braunschweig M., Nezer C., Collette C., Moreau L., Archibald A.L., Haley C.S., Buys N., Tally M., Andersson G., Georges M., An - dersson L. (2003). Aregulatory mutation in IGF2 causesamajor QTLeffect on muscle growth in the pig. Nature, 425: 832-836.
  27. Wang M., Zhang X., Kang L., Jiang C., Jiang Y. (2012). Molecular characterization of porcine NECD, SNRPNand UBE3Agenes and imprinting status in the skeletal muscle of neonate pigs. Mol. Biol. Rep., 39: 9415-9422.
  28. Williamson C.M., Ball S.T., Nottingham W.T., Skinner J.A., Plagge A., Tur- ner M.D., Powles N., Hough T., Papworth D., Fraser W.D., Maconochie M., Pe - ters J. (2004). Acis-acting control region is required exclusively for the tissue-specific imprinting of GNAS. Nat. Genet., 36: 894-899.
  29. Yu S., Yu D., Lee E., Eckhaus M., Lee R., Corria Z., Accili D., Westphal H., Wein - stein L.S. (1998). Variable and tissue-specific hormone resistance in heterotrimeric Gs protein α-subunit (Gsα) knockout mice is due to tissue-specific imprinting of the Gsα gene. Proc. Natl. Acad. Sci. USA, 95: 8715-8720.
  30. Zhang F.W., Han Z.B., Deng C.Y., He H.J., Wu Q. (2012). Conservation of genomic imprinting at the NDN, MAGEL2 and MESTloci in pigs. Genes Genet. Syst., 87: 53-58.
DOI: https://doi.org/10.1515/aoas-2015-0030 | Journal eISSN: 2300-8733 | Journal ISSN: 1642-3402
Language: English
Page range: 867 - 877
Submitted on: Jan 9, 2015
|
Accepted on: Apr 2, 2015
|
Published on: Oct 29, 2015
In partnership with: Paradigm Publishing Services
Publication frequency: Volume open

© 2015 Maria Oczkowicz, Agata Piestrzyńska-Kajtoch, Katarzyna Ropka-Molik, published by National Research Institute of Animal Production
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.